Acidic pH transiently prevents the silencing of self-renewal and dampens microRNA function in embryonic stem cells.

Sci Bull (Beijing)

Beijing Key Laboratory of Cardiometabolic Molecular Medicine, Institute of Molecular Medicine, Peking University, Beijing 100871, China. Electronic address:

Published: July 2021

AI Article Synopsis

  • Enhanced glycolysis is linked to stem and cancer cells, with little understanding of its role in gene expression and cell fate.
  • Glycolytic metabolism and lactate production decrease as mouse embryonic stem cells (mESCs) differentiate, while acidic pH from lactate can prevent the silencing of self-renewal genes during differentiation.
  • Acidic pH affects both stem cells and cancer cells by downregulating AGO1 protein and influencing specific microRNAs, providing insights into its role in maintaining pluripotency.

Article Abstract

Enhanced glycolysis is a distinct feature associated with numerous stem cells and cancer cells. However, little is known about its regulatory roles in gene expression and cell fate determination. Here, we confirm that glycolytic metabolism and lactate production decrease during the differentiation of mouse embryonic stem cells (mESCs). Importantly, acidic pH due to lactate accumulation can transiently prevent the silencing of mESC self-renewal in differentiation conditions. Furthermore, acidic pH partially blocks the differentiation of human ESCs (hESCs). Mechanistically, acidic pH downregulates AGO1 protein and de-represses a subset of mRNA targets of miR-290/302 family of microRNAs which facilitate the exit of naive pluripotency state in mESCs. Interestingly, AGO1 protein is also downregulated by acidic pH in cancer cells. Altogether, this study provides insights into the potential function and underlying mechanism of acidic pH in pluripotent stem cells (PSCs).

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Source
http://dx.doi.org/10.1016/j.scib.2021.03.005DOI Listing

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